0

I've googled this issue, and seems there are a variety of reasons that this occurs. I have the following code which ruled out most of the top reasons I saw:

$conn = new mysqli($DBServer, $DBUser, $DBPass, $DBName);
// check connection
if ($conn->connect_error) {
    trigger_error('Database connection failed: '  . $conn->connect_error, E_USER_ERROR);
}
if (function_exists('mysqli_query')) {
    print('installed');
}
else{
    print('not installed');
}

$sqlQuery="SELECT fname FROM `lists_users` WHERE `id`='2'";

echo $sqlQuery;

// Execute Query -----------------------------
$result = mysqli_query($conn, $sqlQuery);
if(!$result) {
    echo "Cannot do query" . "<br/>";
    exit;
}

$row = mysqli_fetch_row($result);
$count = $row[0];

if ($count > 0) {
    echo "Query works";
} else {
    echo "Query doesn't work" ."<br/>";
}

The result from above code that I get is, Mysqli "installed", and "Query doesn't work". I can copy and paste the echoed above sql query into phpMyAdmin, and it will return a row.

Really really stumped as to what the issue could possibly be.

So at the suggestion of YourCommonSense, I put in error reporting. and the error I get is 'mysqli class not found'.

So did some more googling, and tried this code:

if (!function_exists('mysqli_init') && !extension_loaded('mysqli')) {
echo 'We don\'t have mysqli!!!';
} else {
echo 'Phew we have it!';
}

....and it returns 'Phew we have it!' :\

AND I can run "php -r "new mysqli();" from the commmand line and it works.

  • 2
    You have to learn to make use of error reporting - or you may stumble forever. – Your Common Sense May 6 '14 at 19:22
  • Where is $conn? – AbraCadaver May 6 '14 at 19:23
  • edited to include – brizz May 6 '14 at 19:25
  • @Your Common Sense--that helped. Getting error that "class Mysqli not found" (which I don't get because it says function exists...but whatever, now I have an idea of what I need to do). – brizz May 6 '14 at 19:27
  • and I just checked php.ini and php_mysqli.dll is installed :\ – brizz May 6 '14 at 19:31
2

In Your below Query

SELECT fname FROM `lists_users` WHERE `id`='2'

You are trying to fetch fname, which I assume is String/Varchar type. In your code following line

$row = mysqli_fetch_row($result);

Would return Array and $row[0] would fetch the fname (String Type) value and store it in $count variable Now comparing String with int in if statement would convert String to int value, in our case "0" and the if statement would give false result.

If you want to fetch Count use mysqli_num_rows function (http://www.php.net/manual/en/mysqli-result.num-rows.php).

This should give correct result.

  • I've done the mysqli_num_rows function also, and I've done * in place of fname also, so this is not it. – brizz May 6 '14 at 19:39
  • Ok ... But the edit the question to use mysqli_num_rows, coz the code seems wrong using mysqli_fetch_row and comparing its result to be greater than 0. – Priyadarshan Salkar May 6 '14 at 19:44
2

Change

SELECT fname FROM `lists_users` WHERE `id`='2'

to

SELECT fname FROM `lists_users` WHERE `id`=2

Usually Ids dont need quotes.

Try this approach

$conn = new mysqli($DBServer, $DBUser, $DBPass, $DBName);

/* check connection */
if (mysqli_connect_errno()) {
    printf("Connect failed: %s\n", mysqli_connect_error());
    exit();
}

/* Prepare an insert statement */
$sqlQuery = "SELECT fname FROM `lists_users` WHERE `id`=?";
$stmt = mysqli_prepare($conn, $sqlQuery);

mysqli_stmt_bind_param($stmt, "i", 2);

/* Execute the statement */

if (mysqli_stmt_execute($stmt)) {
    echo "Query works";
} else {
    echo "Query doesn't work" ."<br/>";
}


/* close statement */
mysqli_stmt_close($stmt);


/* close connection */
mysqli_close($conn);
0

If you use mysqli procedural style then use mysqli_connect(), not new mysqli().

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